Restoring the PowerShell helper put it in update.go, which is shared — so a Linux build would have tried to run `powershell` to relaunch itself. It compiled and vetted cleanly for linux/amd64, which is exactly why it needed catching before somebody built it: the fault only shows on a real update, on a machine that has no PowerShell. scheduleRelaunch now lives in the platform files. Windows keeps the helper. Linux starts the new binary directly, which is right there and not a compromise: nothing holds an executable open while it runs, so the swap has already succeeded, and there is no mutex to race — the single-instance guard is an flock the dying process releases as it exits, and the new one waits for our pid first. The two guards were looking at the old location and had to follow: the Wait-Process/Start-Process check moves into relaunch_windows_test.go where it belongs, and TestEveryRelaunchPassesItsPid now scans updateswap_linux.go too — the direct spawn moved there, and without it the test would have gone quiet again. Checked from Windows, as BUILDING-LINUX.md says is done at every release: GOOS=linux go build ./... and go vet ./... both clean.
354 lines
11 KiB
Go
354 lines
11 KiB
Go
package main
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import (
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"archive/zip"
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"encoding/json"
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"fmt"
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"io"
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"net/http"
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"os"
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"path/filepath"
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"strconv"
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"strings"
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"time"
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wruntime "github.com/wailsapp/wails/v2/pkg/runtime"
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"hamlog/internal/applog"
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)
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// updateCheckURL is the GitHub Releases "latest" endpoint for the public OpsLog
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// build (the exe lives there; source stays on Gitea). Adjust the repo if needed.
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const updateCheckURL = "https://api.github.com/repos/GregTroar/OpsLog/releases/latest"
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// releasesPageURL is the same release, for people rather than for the updater:
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// the API address above answers JSON, so it is not something to put in front of
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// an operator who followed a link out of a QSL e-mail.
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const releasesPageURL = "https://github.com/GregTroar/OpsLog/releases/latest"
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// UpdateInfo is the result of the version check.
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type UpdateInfo struct {
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Current string `json:"current"` // this build's version (appVersion)
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Latest string `json:"latest"` // newest published release, "" if unknown
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Available bool `json:"available"` // Latest > Current
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URL string `json:"url"` // release page to open (manual fallback)
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DownloadURL string `json:"download_url"` // the .exe/.zip asset to auto-download, "" if none
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}
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// CheckForUpdate asks GitHub for the latest release and compares it to this
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// build. Best effort — on any failure it reports "no update" so the app never
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// nags about a check it couldn't complete.
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func (a *App) CheckForUpdate() UpdateInfo {
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out := UpdateInfo{Current: appVersion}
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client := &http.Client{Timeout: 8 * time.Second}
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req, err := http.NewRequest(http.MethodGet, updateCheckURL, nil)
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if err != nil {
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return out
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}
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req.Header.Set("Accept", "application/vnd.github+json")
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resp, err := client.Do(req)
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if err != nil {
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applog.Printf("update: check failed: %v", err)
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return out
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}
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defer resp.Body.Close()
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if resp.StatusCode != http.StatusOK {
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return out // no release yet (404) or rate-limited — treat as up to date
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}
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var r struct {
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TagName string `json:"tag_name"`
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HTMLURL string `json:"html_url"`
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Assets []struct {
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Name string `json:"name"`
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URL string `json:"browser_download_url"`
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} `json:"assets"`
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}
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if err := json.NewDecoder(resp.Body).Decode(&r); err != nil {
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return out
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}
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out.Latest = strings.TrimPrefix(strings.TrimSpace(r.TagName), "v")
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out.URL = r.HTMLURL
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out.Available = versionLess(appVersion, out.Latest)
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// Pick the auto-download asset: a bare Windows .exe (portable build) first,
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// else a .zip we can unpack. The frontend hands this straight to
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// DownloadAndApplyUpdate for a one-click in-app update.
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for _, as := range r.Assets {
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if strings.HasSuffix(strings.ToLower(as.Name), ".exe") {
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out.DownloadURL = as.URL
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break
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}
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}
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if out.DownloadURL == "" {
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for _, as := range r.Assets {
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if strings.HasSuffix(strings.ToLower(as.Name), ".zip") {
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out.DownloadURL = as.URL
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break
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}
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}
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}
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if out.Available {
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applog.Printf("update: newer version available — current=%s latest=%s asset=%q", appVersion, out.Latest, out.DownloadURL)
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}
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return out
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}
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// versionLess reports whether version a is older than b. Compares dot-separated
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// numeric parts ("0.9" < "0.10" < "1.0"); non-numeric junk in a part counts as 0.
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func versionLess(a, b string) bool {
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pa := strings.Split(a, ".")
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pb := strings.Split(b, ".")
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n := len(pa)
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if len(pb) > n {
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n = len(pb)
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}
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for i := 0; i < n; i++ {
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ai, bi := 0, 0
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if i < len(pa) {
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ai = leadingInt(pa[i])
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}
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if i < len(pb) {
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bi = leadingInt(pb[i])
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}
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if ai != bi {
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return ai < bi
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}
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}
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return false
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}
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// DownloadAndApplyUpdate downloads the new build, swaps it in for the running exe
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// and relaunches — the fully in-app update. Progress is emitted on "update:progress"
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// (0-100) so the UI can show a bar. On success it never returns normally: it starts
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// the new process and quits this one.
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func (a *App) DownloadAndApplyUpdate(url string) error {
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if strings.TrimSpace(url) == "" {
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return fmt.Errorf("no download URL")
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}
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exe, err := os.Executable()
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if err != nil {
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return fmt.Errorf("locate executable: %w", err)
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}
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dir := filepath.Dir(exe)
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// Download to a temp file next to the exe (same volume, so the rename-swap is
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// atomic and can't fail across drives).
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tmp := filepath.Join(dir, ".opslog-update.download")
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_ = os.Remove(tmp)
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if err := a.downloadWithProgress(url, tmp); err != nil {
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_ = os.Remove(tmp)
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return fmt.Errorf("download: %w", err)
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}
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// The asset is either the bare exe or a zip holding it. Resolve to the new exe.
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newExe := tmp
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if strings.HasSuffix(strings.ToLower(url), ".zip") {
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extracted, xerr := extractExeFromZip(tmp, dir)
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_ = os.Remove(tmp)
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if xerr != nil {
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return fmt.Errorf("unpack: %w", xerr)
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}
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newExe = extracted
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}
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// Swap: rename the running exe out of the way (Windows allows renaming a
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// running image), move the new one into its place, then relaunch. Roll back if
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// the second rename fails so we never end up with no exe.
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//
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// The staging name is UNIQUE, not a fixed ".old". With a fixed name, one
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// leftover that could not be deleted — an antivirus holding it open is the
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// usual reason — poisoned every later update: the rename replaces its target,
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// the target was locked, and the operator got "stage current exe: … Accès
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// refusé" for ever with no way out but deleting the file by hand.
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oldExe := fmt.Sprintf("%s.old-%d", exe, time.Now().UnixNano())
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var stageErr error
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staged := false
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// Retry briefly: a real-time scanner opens the file it has just seen written
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// and holds it for a moment, so the first attempt lands exactly in that window.
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for attempt := 0; attempt < 5; attempt++ {
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if stageErr = os.Rename(exe, oldExe); stageErr == nil {
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staged = true
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break
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}
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time.Sleep(time.Duration(150*(attempt+1)) * time.Millisecond)
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}
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if staged {
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if err := os.Rename(newExe, exe); err != nil {
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_ = os.Rename(oldExe, exe) // roll back
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return fmt.Errorf("install new exe: %w", err)
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}
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} else {
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// Could not rename our own running image at all. Some endpoint protection
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// (Bitdefender's ransomware remediation among them) blocks precisely that,
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// and no amount of retrying gets past it.
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//
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// So don't fight it: leave the new build beside the old one and let the
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// relaunch helper do the swap AFTER this process has exited, when the file
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// is no longer a running image. Reported by several operators, all with the
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// same "Accès refusé" on the staging rename.
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applog.Printf("update: cannot rename the running exe (%v) — deferring the swap to after exit", stageErr)
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pending := exe + ".new"
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_ = os.Remove(pending)
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if err := os.Rename(newExe, pending); err != nil {
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_ = os.Remove(newExe)
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return fmt.Errorf("stage new exe: %w (the folder %s must be writable, and an antivirus may be holding OpsLog.exe)", err, dir)
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}
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if err := a.scheduleDeferredSwap(exe, pending); err != nil {
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return err
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}
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if a.ctx != nil {
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wruntime.Quit(a.ctx)
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} else {
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os.Exit(0)
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}
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return nil
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}
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// Clear the "downloaded from the internet" mark (NTFS Zone.Identifier stream).
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// Otherwise Windows SmartScreen wants to prompt "are you sure you want to open
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// this?" — but since we launch the exe programmatically that prompt never shows,
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// and the launch is silently blocked. This is exactly why the relaunch failed.
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clearDownloadMark(exe)
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if err := makeExecutable(exe); err != nil {
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applog.Printf("update: could not restore the executable bit on %s: %v", filepath.Base(exe), err)
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}
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applog.Printf("update: installed new build, scheduling relaunch")
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// How the new build gets started differs by platform — see
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// scheduleRelaunch in updateswap_windows.go and updateswap_linux.go. On
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// Windows it is a helper that outlives us; on Linux it is simply the new
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// binary, because nothing there holds an image open.
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if err := a.scheduleRelaunch(exe, dir); err != nil {
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applog.Printf("update: the relaunch could not be started: %v", err)
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return err
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}
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if a.ctx != nil {
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wruntime.Quit(a.ctx)
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} else {
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os.Exit(0)
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}
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return nil
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}
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// downloadWithProgress streams url into dest, emitting "update:progress" (0-100).
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func (a *App) downloadWithProgress(url, dest string) error {
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client := &http.Client{Timeout: 10 * time.Minute}
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resp, err := client.Get(url)
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if err != nil {
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return err
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}
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defer resp.Body.Close()
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if resp.StatusCode != http.StatusOK {
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return fmt.Errorf("HTTP %d", resp.StatusCode)
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}
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f, err := os.Create(dest)
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if err != nil {
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return err
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}
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defer f.Close()
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total := resp.ContentLength
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var read int64
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last := -1
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buf := make([]byte, 64*1024)
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emit := func(pct int) {
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if a.ctx != nil {
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wruntime.EventsEmit(a.ctx, "update:progress", pct)
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}
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}
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emit(0)
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for {
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n, rerr := resp.Body.Read(buf)
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if n > 0 {
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if _, werr := f.Write(buf[:n]); werr != nil {
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return werr
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}
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read += int64(n)
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if total > 0 {
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if pct := int(read * 100 / total); pct != last {
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last = pct
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emit(pct)
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}
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}
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}
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if rerr == io.EOF {
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break
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}
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if rerr != nil {
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return rerr
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}
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}
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emit(100)
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return nil
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}
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// extractExeFromZip unpacks the first *.exe found in the zip into dir and returns
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// its path.
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func extractExeFromZip(zipPath, dir string) (string, error) {
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zr, err := zip.OpenReader(zipPath)
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if err != nil {
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return "", err
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}
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defer zr.Close()
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for _, zf := range zr.File {
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if !strings.HasSuffix(strings.ToLower(zf.Name), ".exe") {
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continue
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}
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rc, err := zf.Open()
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if err != nil {
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return "", err
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}
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out := filepath.Join(dir, ".opslog-update.exe")
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f, err := os.Create(out)
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if err != nil {
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rc.Close()
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return "", err
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}
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_, cerr := io.Copy(f, rc)
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rc.Close()
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f.Close()
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if cerr != nil {
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return "", cerr
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}
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return out, nil
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}
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return "", fmt.Errorf("no .exe inside the archive")
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}
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// cleanupOldUpdateBinary removes what a self-update left behind. Called at
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// startup after a --post-update relaunch. Best-effort throughout: a file may
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// still be locked by a scanner, and the next launch will get it.
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//
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// Sweeps a PATTERN, not one name. Staging uses a unique ".old-<nanos>" precisely
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// so a locked leftover cannot block the next update, which means leftovers
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// accumulate unless something collects them — and the pre-0.24.1 ".old" may be
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// sitting there too, from the very update that could not delete it.
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func cleanupOldUpdateBinary() {
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exe, err := os.Executable()
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if err != nil {
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return
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}
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_ = os.Remove(exe + ".old") // the old fixed name
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_ = os.Remove(exe + ".new") // a deferred swap that has been applied
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matches, err := filepath.Glob(exe + ".old-*")
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if err != nil {
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return
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}
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for _, m := range matches {
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_ = os.Remove(m)
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}
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}
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// leadingInt parses the leading digits of s (e.g. "2beta" → 2), 0 if none.
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func leadingInt(s string) int {
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s = strings.TrimSpace(s)
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end := 0
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for end < len(s) && s[end] >= '0' && s[end] <= '9' {
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end++
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}
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if end == 0 {
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return 0
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}
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n, _ := strconv.Atoi(s[:end])
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return n
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}
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